4.6 Article

Enhanced photocatalytic mechanism for the hybrid g-C3N4/MoS2 nanocomposite

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 2, Issue 21, Pages 7960-7966

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4ta00275j

Keywords

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Funding

  1. National Key Basic Research Program [2011CB921400, 2014CB921101]
  2. Strategic Priority Research Program (B) of the CAS [XDB01020000]
  3. National Natural Science Foundation of China [11074235, 21273208, 21273210, 11034006]
  4. Fundamental Research Funds for the Central Universities
  5. China Postdoctoral Science Foundation [2012M511409]
  6. USTC-HP HPC project
  7. SCCAS
  8. Shanghai Supercomputer Center

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Here, we explore the enhanced photocatalytic mechanism for the hybrid g-C3N4/MoS2 nanocomposites for the first time by performing extensive density functional theory calculations. The calculated band alignment between the g-C3N4 monolayer and MoS2 sheets clearly reveals that the conduction band minimum and valence band maximum of the g-C3N4 monolayer are higher by about 0.83 eV and 0.15 eV respectively than those of the MoS2 sheet. This predicted type-II band alignment ensures the photogenerated electrons easily migrate from the g-C3N4 monolayer to the MoS2 sheet, and leads to the high hydrogen-evolution reaction activity. The charge transfer between MoS2 and g-C3N4 results in a polarized field within the interface region, which will benefit the separation of photogenerated carriers. The calculated optical absorption curves verify that this proposed layered nanocomposite is a good light-harvesting semiconductor. Moreover, a g-C3N4 bilayer covering a MoS2 sheet also displays desirable properties. These findings indicate that the MoS2 sheet is a promising candidate as a non-noble metal co-catalyst for g-C3N4 photocatalysts, and also provide useful information for understanding the observed enhanced photocatalytic mechanism in experiments.

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